新型滤饼破碎机技术通过消除近井损害区,实现产量最大化,该技术采用了专为高温油藏设计的延迟机制

M. Nasrallah, M. Vinci
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引用次数: 5

摘要

本文论述了一种基于乳酸化学的滤饼破碎新技术的成功设计、测试和应用。该技术在220°F时延长了滤饼突破时间,从而确保了整个裸眼井的覆盖范围,改善了滤饼的均匀去除,最大限度地减少了盐水损失,并超过了阿布扎比海上油藏不同层的预期产量。油藏描述是确定适当解决方案以最大化资产投资回报的基本组成部分。对温度、渗透率、孔隙度和储层性质进行了深入研究,以确定在不同储层中使用的一种解决方案。钻井液特性(通过适当的桥接包实现无损伤)和适当的滤饼设计对于超过储层的目标产量至关重要。本文讨论了断路器的实验室试验、在水库不同层的应用以及应用结果的各个步骤。乳酸前驱体是覆盖不同储层的“一体溶液”。由于其化学结构,其水解过程比目前其他类型的破胶剂要慢,这使得在高温下最大限度地延长破胶时间,最大限度地减少完井液损失,并优化完井作业。同样重要的是,作为酸性前体而不是活性酸,该解决方案使现场工作人员能够在不影响健康、安全和环境(HSE)方面的情况下实施该解决方案,而HSE是海上作业的基础。将该解决方案泵入钻机,无需额外设备即可完成增产作业。这些目标的实现,以及在油井返排过程中观察到的更高产量,证明了该解决方案如何最大限度地提高了阿布扎比海上资产的投资回报。与广泛使用的传统甲酸前体破胶剂相比,乳酸化学在破胶剂中的创新应用,由于酸的释放速度较慢,在较高的井底温度下(在这种情况下为220°F)提供了更好的延迟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New Filter-Cake Breaker Technology Maximizes Production Rates by Removing Near-Wellbore Damage Zone with Delay Mechanism Designed for High Temperature Reservoirs: Offshore Abu Dhabi
This paper discusses the successful design, testing, and application of a new filter-cake breaker technology based on lactic acid chemistry. This technology provided prolonged delay in filter-cake breakthrough time at 220°F, which ensured coverage of the entire open hole, improved uniform filter-cake removal, minimized brine losses, and exceeded the expected production rates in different layers of the offshore Abu Dhabi reservoir. Reservoir characterization was a fundamental component in the identification of the proper solution to maximize the return on investment of the assets. Temperature, permeability, porosity, and the nature of the reservoirs were studied thoroughly to determine one solution to be used in different reservoirs. Drilling fluid characterization (non-damaging with proper bridging package) and a proper filter-cake design were crucial to exceed the targeted production of the reservoirs. The paper discusses all steps from the laboratory testing of the breaker, application in different layers of the reservoir, and results obtained from the applications. Lactic acid precursor was confirmed to be the "one fit solution" to cover the different reservoir layers. Because of its chemical structure, the hydrolysis process is slower than other breaker types currently available, which made it possible to maximize the breakthrough time at elevated temperatures, minimize completion fluid losses, and optimize the completion operations. Equally important, as an acid precursor rather than a live acid, this solution enabled the rig site personnel to implement the solution without affecting the health, safety, and environment (HSE) aspects that are fundamental in offshore locations. The possibility of pumping this solution through the rig pits enabled the jobs to be performed without additional equipment generally required for well stimulation. The achievement of these goals, supported by the higher production observed during the flow-back of the well, demonstrated how this solution maximized the return on investment for the assets located offshore Abu Dhabi. The innovative use of lactic acid chemistry in the breaker, as compared to the conventional formic acid precursor breakers that are widely available, provided superior delay at higher bottomhole temperatures (in this case, 220°F) because of the slower acid liberation rate.
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